Sort:
Open Access Issue
Effects of Extrusion and Enzymatic Hydrolysis on the in Vitro Starch Digestibility, Protein Structure and Rheological Properties of Pea Flour
Food Science 2022, 43(1): 76-82
Published: 15 January 2022
Abstract PDF (3.9 MB) Collect
Downloads:8
Objective

The effects of extrusion alone and followed by enzymatic hydrolysis on the microstructure and physicochemical properties of pea flour were investigated.

Methods

The structures of raw, extruded and hydrolysed pea flours were determined using scanning electronic microscopy (SEM), X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), a rapid viscosity analyzer (RVA), and a rheometer, and the in vitro starch digestibility was measured.

Results

Extrusion partially destroyed the structure of pea flour, as manifested by a decrease in relative crystallinity, I1045 cm-1/I1022 cm-1, viscosity, breakdown and retrogradation value. The relative crystallinity of starch in hydrolyzed extruded pea flour was increased, the viscosity was reduced, and the resistance to shearing and retrogradation was enhanced compared with extruded pea flour. Extrusion and enzymatic treatment had significant effects on the secondary structure of proteins in pea flour, as shown by a reduction (extrusion) or even disappearance (enzymatic treatment) of α-helix, a decrease in β-sheet and an increase in β-turn and random coil. In addition, extrusion and enzymatic treatment increased the content of slowly digestible starch (SDS) and decreased the content of resistant starch (RS). The viscoelasticity and temperature stability of pea flour was improved by enzymatic treatment.

Conclusion

Pea flour extrudate and its enzymatic hydrolysate can be used as high-quality ingredients for high-SDS foods, and can be blended with cereals due to the increased protein digestibility and high lysine content.

Open Access Issue
Effects of the extrusion and enzymatic extrusion treatment on the apparent viscosity of degerminated maize grits
International Journal of Agricultural and Biological Engineering 2024, 17(3): 249-254
Published: 30 June 2024
Abstract PDF (1.3 MB) Collect
Downloads:31

Apparent viscosity is an important parameter for glucose syrup production. which is greatly affected by particle size and concentration of samples. In order to analyze the factors influencing the apparent viscosity, the particle size distribution, steady shear flow behavior, temperature, and time sweep test of native degerminated maize grits (NDMG), extruded degerminated maize grits (EDMG), and enzymatically extruded degerminated maize grits (EEDMG) with different particle sizes (passed through 20, 40, 60, 80, and 100 mesh sieves) and concentrations (water-sample ratios: 2:1, 3:1, 5:1, 10:1, and 20:1) were investigated. All samples passed through different mesh sieves showed a gradient and a relatively concentrated distribution, and slurries had typical shear-thinning properties. Apparent viscosity increased with increasing particle size and concentration. The lowest apparent viscosity was attained from the samples obtained at 100+ mesh and 20:1 water-sample ratio. Moreover, the sample with a 20:1 water-sample ratio showed the most stable apparent viscosity in the temperature sweep test. In the time sweep test, the power law equation with high determination coefficients (R2=0.9446, 0.9382) and low root mean square error (RMSE=0.0002) had the best fit to the experimental data of the EDMG and EEDMG samples passed through 100+ mesh. Overall, the lower apparent viscosities of the EDMG and EEDMG samples obtained at 100+ mesh and 20:1 water-sample ratio can improve the activity and accessibility of enzymes for glucose syrup production. This study provides critical insight into decreased apparent viscosity and expands the uses of EDMG and EEDMG in the glucose syrup sector.

Total 2